Blind Image Quality Assessment Using Naturalness Aware Multiscale Features
Nay Chi Lynn,
Yosuke Sugiura,
Tetsuya Shimamura
Abstract:We propose a blind image quality assessment (BIQA) method of using the multitask-learningbased end-to-end convolutional neural network (CNN) approach. The architecture of the proposed method is integrated by two streams. In the first stream, multiscale image features are extracted by using the inception and pyramid pooling modules. Natural scene statistics (NSS)-based features are extracted in the second stream. The two streams are then integrated into fully connected layers to estimate the image quality score… Show more
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